Submitted:
24 December 2024
Posted:
25 December 2024
You are already at the latest version
Abstract
Keywords:
1. Introduction

2. Measured vibrations of the ancient seawall induced by approach slab crossing
3. Vehicle-road coupling element considering vertical and tangential wheel-road contact forces
3.1. vehicle-road coupling element
3.2. wheel-road contact force
4. Numerical analysis model of the ancient seawall considering discrete-continuous characteristics
4.1. Contact elements and crack simulation
4.2. Finite Element Elements and Constitutive Models
4.3. Model development and mesh generation
5. Simulation and validation of the approach slab crossing condition
5.1. Establishment of the approach slab crossing model
5.2. Simulation of the approach slab crossing and comparison with measured results
6. Analysis of vibration levels under different approach slab angles
7. Conclusions
References
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| Density | Young’s Modulus | Poisson’s Ratio | Friction angle | Flow stress ratio | Dilation angle |
|---|---|---|---|---|---|
| 32.6 MPa | 0.2 | 53.47° | 1 | 16.72° |
| Yield stress (MPa) | Absolute plastic strain |
|---|---|
| 62.28 | 0 |
| 78.78 | 0.0005 |
| 95.99 | 0.001 |
| 113.07 | 0.0015 |
| 130.3 | 0.002 |
| 145.87 | 0.0025 |
| Property | Value |
|---|---|
| Density | 1030 kg/m3 |
| 2.22×109 Pa | |
| 9.1×108 Pa | |
| 9.1×108 Pa | |
| 3×105 Pa | |
| Surface: 2.31×105 Pa Middle: 2.47×105 Pa Bottom: 2.57×105 Pa |
|
| Normal fracture energy | 469 J/m2 |
| Shear fracture energy | 1210 J/m2 |
| Block type | Length (mm) | Block type | Length (mm) |
|---|---|---|---|
| (1) | 1440 | (10) | 1170 |
| (2) | 1060 | (11) | 980 |
| (3) | 840 | (12) | 1330 |
| (4) | 1380 | (13) | 920 |
| (5) | 780 | (14) | 993 |
| (6) | 850 | (15) | 1240 |
| (7) | 1100 | (16) | 1650 |
| (8) | 1010 | (17) | 1280 |
| (9) | 1040 | (18) | 1140 |
| Soil layer | Moisture content (%) | /m3) | Pore ratio) | Liquid limit | Plastic limit | |
|---|---|---|---|---|---|---|
| Fill soil | 26.9 | 18.8 | 2.71 | 0.786 | 30.6% | 19.0% |
| Rayleigh Damping Parameters(Rev/min) | ) | Elastic modulus | Poisson's Ratio | |
|---|---|---|---|---|
| Fill soil | Alpha: 0.04 Beta: 6.96×10-5 |
1880 | Young’s Modulus:210 MPa Poisson's Ratio:0.25 |
0.2 |
| ) | Parameters | |
|---|---|---|
| Longitudinal beam | 7850 |
Poisson's Ratio: 0.3 |
| Crossbeam | 7850 |
Poisson's Ratio:0.3 |
| Steel plate | 7850 |
Poisson's Ratio:0.3 Coefficient of friction with wheels: 0.2 |
| Bedding stone | 2000 |
Poisson's Ratio: 0.2 |
| Condition | Vibration direction | ||
|---|---|---|---|
| Slab surface | Seawall top | ||
| Slab angle 3° | X | 13.1983 | 1.5203 |
| Y | 0.9616 | 0.1538 | |
| Z | 74.4949 | 1.1980 | |
| Slab angle 4° | X | 22.6205 | 1.7103 |
| Y | 1.7248 | 0.2960 | |
| Z | 81.0554 | 1.3477 | |
| Slab angle 5° | X | 36.4729 | 1.9003 |
| Y | 2.8869 | 0.3348 | |
| Z | 88.4512 | 1.4974 | |
| Slab angle 6° | X | 13.9938 | 1.0642 |
| Y | 0.5448 | 0.1414 | |
| Z | 80.8559 | 0.8386 | |
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